About Me

Foto saya
juzt a simple man with his three angels....

Jam neh....

Star Rating

Tampilkan postingan dengan label insect. Tampilkan semua postingan
Tampilkan postingan dengan label insect. Tampilkan semua postingan

Minggu, 26 April 2009

Lalat Buah ( Bactrocera sp.)


Salah satu hama penting tanaman hortikultura yang saat ini menjadi isu nasional juga menjadi faktor pembatas perdagangan (trade barrier). Adalah lalat buah. Komoditas ekspor suatu negara dapat ditolak oleh negara lain dengan alasan terdapatnya lalat buah.
Jenis Lalat Buah di IndonesiaLalat buah yang banyak terdapat di Indonesia adalah dari genus Bactrocera dan salah satu jenis yang sangat penting dan ganas adalah Bactrocera dorsalis Hendel complex. B. dorsalis Hendel complex merupakan lalat buah yang bersifat polifag, mempunyai sekitar 26 jenis inang seperti belimbing, jambu biji, tomat, cabai merah, melon, apel, nangka kuning, mangga, dan jambu air.
Selain merusak buah-buahan seperti jatuhnya buah muda yang terserang, serangan hama ini juga menyebabkan buah menjadi busuk dan dihinggapi belatung lalat buah juga merupakan vektor bakteri Escherichia coli, penyebab penyakit pada manusia sehingga dapat dijadikan alasan untuk menghambat perdagangan. Untuk mencegah masuknya spesies baru lalat buah ke Indonesia, pemerintah mengeluarkan Permentan No.37/ KPTS/HK. 060/172006 yang menetapkan hanya tujuh pintu masuk buah segar ke Indonesia, yaitu Batu Ampar, Batam; Ngurah Rai, Bali; Makassar; Belawan, Medan; Tj. Priok, Jakarta; Tj. Perak, Surabaya, dan Cengkareng, Jakarta.
Intensitas serangan lalat buah di beberapa daerah di Jawa Timur dan Bali menunjukkan variasi yang cukup besar, berkisar antara 6,4-70% Intensitas serangan lalat buah pada mangga berkisar antara 14,8-23%. Namun tidak jarang kerusakan yang diakibatkan lalat buah, khususnya pada belimbing dan jambu biji, dapat mencapai 100% .
...

Gejala

Pada buah yang terserang biasanya terdapat lubang kecil di bagian tengah kulitnya. Serangan lalat buah ditemukan terutama pada buah yang hampir masak. Gejala awal ditandai dengan noda/titik bekas tusukan ovipositor (alat peletak telur) lalat betina saat meletakkan telur ke dalam buah. Selanjutnya karena aktivitas hama di dalam buah, noda tersebut berkembang menjadi meluas. Larva makan daging buah sehingga menyebabkan buah busuk sebelum masak. Apabila dibelah pada daging buah terdapat belatung-belatung kecil dengan ukuran antara 4-10 mm yang biasanya meloncat apabila tersentuh. Kerugian yang disebabkan oleh hama ini mencapai 30-60%. Kerusakan yang ditimbulkan oleh larvanya akan menyebabkan gugurnya buah sebelum mencapai kematangan yang diinginkan.
Bioekologi

Dalam siklus hidupnya lalat buah mempunyai 4 stadium hidup yaitu telur, larva, pupa dan dewasa. Lalat buah betina memasukkan telur kedalam kulit buah jeruk atau di dalam luka atau cacat buah secara berkelompok. Lalat buah betina bertelur sekitar 15 butir. Telur berwarna putih transparan berbentuk bulat panjang dengan salah satu ujungnya runcing. Larva lalat buah hidup dan berkembang di dalam daging buah selama 6-9 hari. Larva mengorek daging buah sambil mengeluarkan enzim perusak atau pencerna yang berfungsi melunakkan daging buah sehingga mudah diisap dan dicerna. Enzim tersebut diketahui yang mempercepat pembusukan, selain bakteri pembusuk yang mempercepat aktivitas pembusukan buah. Jika aktivitas pembusukan sudah mencapai tahap lanjut, buah akan jatuh ke tanah, bersamaan dengan masaknya buah, larva lalat buah siap memasuki tahap pupa, larva masuk dalam tanah dan menjadi pupa. Pupa berwarna kecoklatan berbentuk oval dengan panjang 5 mm. Lalat dewasa berwarna merah kecoklatan, dada berwarna gelap dengan 2 garis kuning membujur dan pada bagian perut terdapat garis melintang. Lalat betina ujung perutnya lebih runcing dibandingkan lalat jantan. Siklus hidup dari telur menjadi dewasa berlangsung selama 16 hari. Fase kritis tanaman yaitu pada saat tanaman mulai berbuah terutama pada saat buah menjelang masak. Lalat buah yang mempunyai ukuran tubuh relatif kecil dan siklus hidup yang pendek peka terhadap lingkungan yang kurang baik. Suhu optimal untuk perkembangan lalat buah ? 26?C, sedangkan kelembaban relatif sekitar 70%. Kelembaban tanah sangat berpengaruh terhadap perkembangan pupa. Kelembaban tanah yang sesuai untuk stadia pupa adalah 0-9%. Cahaya mempunyai pengaruh langsung terhadap perkembangan lalat buah. Lalat buah betina akan meletakkan telur lebih cepat dalam kondisi yang terang, sebaliknya pupa lalat buah tidak akan menetas apabila terkena sinar. Lalat buah paling banyak menyerang pada pamelo (Citrus grandis) dan sedikit yang menyerang jeruk manis (C. sinensis) maupun keprok (C. reticulata). Pada pamelo diidentifikasi sebagai B. carambolae dan B. papayae. Pada pamelo serangan lalat buah kadang-kadang bersamaan dengan serangan penggerek buah Citripestis sagitiferella, sehingga agak sulit membedakan serangga tersebut. Hama ini banyak ditemukan di sentra-sentra produksi jeruk seperti di Sumatera Utara dan Jawa Timur.

Pengendalian Lalat Buah

Di Hawaii, pengendalian lalat buah memadukan beberapa teknik pengendalian, di antaranya dengan atraktan dalam perangkap, yang dapat menekan penggunaan pestisida kimia sintetis hingga 75-95%. Beberapa teknik pengendalian telah banyak dikembangkan, di antaranya penggunaan GA (Gibberellic Acid), yaitu membuat penampilan buah-buahan tidak matang, sehingga lalat buah enggan meletakkan telur pada buah. Selain itu, pelepasan serangga mandul, khususnya jantan mandul, telah dikembangkan pula dan memberikan hasil yang memuaskan. Teknik lain yang sudah berhasil dikembangkan di Australia adalah foliage baiting (penggunaan umpan beracun), coversprayng (penyemprotan tanaman beserta buahnya dengan insektisida), dan trapping (perangkap dengan atraktan di dalamnya), selain menjaga sanitasi kebun (Broghton etal., 2004).
Pengendalian dengan Atraktan (Zat Pemikat)

Penggunaan atraktan metil eugenol merupakan cara pengendalian yang ramah lingkungan dan telah terbukti efektif. Atraktan dapat digunakan untuk mengendalikan hama lalat buah dalam tiga cara, yaitu: (a) mendeteksi atau memonitor populasi lalat buah, (b) menarik lalat buah untuk kemudian dibunuh dengan perangkap, dan (c) mengacaukan lalat buah dalam perkawinan, berkumpul, dan cara makan.
Read more / Selengkapnya...

Senin, 26 Januari 2009

Insect Biology and Ecology

Insects are the dominant life-form on earth. Millions may exist in a single acre of land. About one million species have been described, and there may be as many as ten times that many yet to be identified. Of all creatures on earth, insects are the main consumers of plants. They also play a major role in the breakdown of plant and animal material and constitute a major food source for many other animals.

Insects are extraordinarily adaptable creatures, having evolved to live successfully in most environments on earth, including deserts and the Antarctic. The only place where insects are not commonly found is the oceans. If they are not physically equipped to live in a stressful environment, insects have adopted behaviors to avoid such stresses. Insects possess an amazing diversity in size, form, and behavior.

It is believed that insects are so successful because they have a protective shell or exoskeleton, they are small, and they can fly. Their small size and ability to fly permits escape from enemies and dispersal to new environments. Because they are small they require only small amounts of food and can exist in very small niches or spaces. In addition, insects can produce large numbers of offspring relatively quickly. Insect populations also possess considerable genetic diversity and a great potential for adaptation to different or changing environments. This makes them an especially formidable pest of crops, able to adapt to new plant varieties as they are developed or rapidly becoming resistant to insecticides.

Insects are directly beneficial to humans by producing honey, silk, wax, and other products. Indirectly, they are important as pollinators of crops, natural enemies of pests, scavengers, and food for other creatures. At the same time, insects are major pests of humans and domesticated animals because they destroy crops and vector diseases. In reality, less than one percent of insect species are pests, and only a few hundred of these are consistently a problem. In the context of agriculture, an insect is a pest if its presence or damage results in an economically important loss.

The adage "know your enemy" is especially appropriate when it comes to insect pests. The more we know about their biology and behavior, including their natural enemies, the more likely we will be able to manage them effectively.



Left: Hippodamia glacialis, a predator of aphids. J.Ogrodnick
Center: Cotesia congregata, a parasitoid of caterpillars. K.Kester
Right: The larvae of Sphenoptera jugoslavica feed on the roots of the plant pest diffuse knapweed. R.Richard
...

Insect Anatomy


Insects and closely related organisms have a lightweight, but strong exterior skeleton (exoskeleton) or integument. Their muscles and organs are on the inside. This multi-layered exoskeleton protects the insect from the environment and natural enemies. The exoskeleton also has many sense organs for detecting light, pressure, sound, temperature, wind, and odor. Sense organs may be located almost anywhere on the insect body, not just on the head.

Insects have three body regions: head, thorax, and abdomen. The head functions mainly for food and sensory intake and information processing. Insect mouthparts have evolved for chewing (beetles, caterpillars), piercing-sucking (aphids, bugs), sponging (flies), siphoning (moths), rasping-sucking (thrips), cutting-sponging (biting flies), and chewing-lapping (wasps). The thorax provides structural support for the legs (three pairs) and, if present, for one or two pairs of wings. The legs may be adapted for running, grasping, digging, or swimming. The abdomen functions in digestion and reproduction.

The internal anatomy of insects is characterized by an open circulatory system, a multitude of breathing tubes, and a three-chambered digestive system. With the exception of a heart and an aorta, there are few blood vessels; insect blood simply flows around inside the body cavity. Air enters the insect through a few openings (spiracles) in the exoskeleton, and makes its way to all areas of need by way of branching tubes, which permeate the body. The insect digestive system is long and tube-like, often divided into three sections, each with a different function. The insect nervous system transports and processes information received from the sense organs (sight, smell, taste, hearing, and touch). The brain, located in the head, processes information, but some information is also processed at nerve centers elsewhere in the body.

Knowledge about the structure and function of the insect exoskeleton has proven critical in developing insecticide formulations that are able to penetrate this multi-layered protective covering. Studies of insect communication have led to the discovery of chemical compounds used by insects to locate each other or host plants, and many of these have now been identified and produced synthetically. For example, pheromones are very specific compounds released by insects to attract others of the same species, such as for mating. Synthetic pheromones are now widely used to bait insect traps for detecting the presence of a pest, to determine its abundance, or for control. Control may involve the use of many traps to "trap out" the pest or the pheromones can be dispersed throughout the crop to "confuse" insects, making it more difficult for them to find a mate.

As simple as it may seem, knowing what type of mouthparts an insect has can be very important in deciding on a management tactic. For example, insects with chewing mouthparts can be selectively controlled by some insecticides that are applied directly to plant surfaces and are only effective if ingested; contact alone will not result in death of the insect. Consequently, natural enemies that feed on other insects, but not the crop plant, will not be harmed.

Since insects obtain oxygen through their spiracles, plugging these openings causes death. That is how insecticidal oils control insects. Components of the microbial insecticide Bacillus thuringiensis enter the digestive system and break down the gut lining. Knowledge of the nervous system of insects has led to the development of several types of insecticides designed to disrupt normal nerve function. Some of these are effective simply by contacting the insect.

Insect Reproduction

Most species of insects have males and females that mate and reproduce sexually. In some cases, males are rare or present only at certain times of the year. In the absence of males, females of some species may still reproduce. This is common, particularly among aphids. In many species of wasps, unfertilized eggs become males while fertilized eggs become females. In a few species, females produce only females.

A single embryo typically develops within each egg, except in the case of polyembryony, where hundreds of embryos may develop per egg. Insects may reproduce by laying eggs or, in some species, the eggs may hatch within the female which shortly thereafter deposits young. In another strategy common to aphids, the eggs hatch within the female and the immatures remain within the female for some time before birth.

Insect Growth and Development (Metamorphosis)


Insects typically pass through four distinct life stages: egg, larva or nymph, pupa, and adult. Eggs are laid singly or in masses, in or on plant tissue or another insect. The embryo within the egg develops, and eventually a larva or nymph emerges from the egg. There are generally several larval or nymphal stages (instars), each progressively larger and requiring a molt, or shed of the outer skin, between each stage. Most weight gain (sometimes > 90%) occurs during the last one or two instars. In general, neither eggs, pupae, nor adults grow in size; all growth occurs during the larval or nymphal stages.

The two types of metamorphosis typical of insect pests and natural enemies are gradual (egg > nymph > adult) and complete (egg > larva > pupa > adult). In gradual metamorphosis, the nymphal stages resemble the adult except that they lack wings and the nymphs may be colored differently than the adults. Nymphs and adults usually occupy similar habitats and have similar hosts. Gradual metamorphosis is typical of true bugs and grasshoppers; complete metamorphosis is typical of beetles, flies, moths, and wasps. The immatures of these latter species do not resemble the adults, may occupy different habitats, and feed on different hosts. Some moth and wasp larvae weave a silken shell (cocoon) to protect the pupal stage; in flies, the last larval skin becomes a puparium that protects the pupal stage.

Insects are cold-blooded, so that the rate at which they develop is mostly dependent on the temperature of their environment. Cooler temperatures result in slowed growth; higher temperatures speed up the growth process. If a season is hot, more generations may occur than during a cool season.

A better understanding of how insects grow and develop has contributed greatly to their management. For example, knowledge of the hormonal control of insect metamorphosis led to the development of a new class of insecticides called insect growth regulators (IGR). The insect growth regulators are very selective in the insects they affect. Based on information about insect growth rates relative to temperature, computer models can be used to predict when insects will be most abundant during the growing season and, consequently, when crops are most at risk.
Insect Classification and Identification

It is necessary to classify insects so that we can organize what we know about them and determine their relationships with other insects. For example, all members of a particular species will feed on similar foods, have similar developmental characteristics, and exist in similar environments. Most often, insect species are classified based on similarities in appearance (morphology). The flies, for example, can be distinguished and classified separately from all other winged insects because they have only one pair of wings. The hierarchy used to classify the diamondback moth, a worldwide pest of crucifers, is as follows:
  • Phylum - Arthropoda
  • Class - Insecta
  • Order - Lepidoptera
  • Family - Plutellidae
  • Genus - Plutella
  • species - Plutella xylostella

This universal method is used to prevent confusion among geographic regions of the world. Consequently, Plutella xylostella refers to the same insect species in the United States as it does in Asia or anywhere else in the world. Common names, however, can vary from one location to another.


Ecology is the study of the interrelationships between organisms and their environment. An insect's environment may be described by physical factors such as temperature, wind, humidity, light, and biological factors such as other members of the species, food sources, natural enemies, and competitors (organisms using the same space or food source). An understanding or at least an appreciation of these physical and biological (ecological) factors and how they relate to insect diversity, activity (timing of insect appearance or phenology), and abundance is critical for successful pest management.

Some insect species have a single generation per season (univoltine), while others may have several (multivoltine). The striped cucumber beetle, for example, overwinters as an adult, emerges in the spring, and lays eggs near the roots of young cucurbit plants. The eggs hatch, producing larvae that emerge as adults later in the summer. These adults overwinter to start the cycle again the next year. In contrast, egg parasitoids like Trichogramma overwinter as immatures within the egg of their host. During the summer they may have several generations.
Insects adapt to many types of environmental conditions during their seasonal cycle. To survive the harsh winters, cucumber beetles enter a dormant state. While in this dormant state, metabolic activity is minimal and no reproduction or growth occurs. Dormancy can also occur at other times of the year when conditions may be stressful for the insect.

It is often better to consider insects as populations rather than individuals, especially within the context of an agroecosystem. Populations have attributes such as density (number per unit area), age distribution (proportion in each life stage), and birth and death rates. Understanding the attributes of a pest population is important for good management. Knowing the age distribution of a pest population may indicate the potential for crop damage. For example, if most of the striped cucumber beetles are immatures, direct damage to the above ground portions of the plant is unlikely. Similarly, if the density of a pest is known and can be related to the potential for damage, an action may be required to protect the crop. Information about death rates due to natural enemies can be very important. Natural enemies do nothing but reduce pest populations and understanding and quantifying their impact is important to effective pest management. This is all the more reason to conserve their numbers.
Read more / Selengkapnya...

The Defense Methods of Spiders

In the world, there is one type of creature that most people are afraid of, Spiders. Ever since I was younger, I have always enjoyed keeping and watching spiders. If more people would study spiders, they would find out there is lots about spiders that is very interesting. There are species of spiders that are prey - specific prey - catching. The types of species are known as araneophagic salticids. Another thing about spiders that people don't realize is that spider have defense maginisms to protect them from predators, such as, flicking their hairs off their abdomen. Reproduction for spiders can be very dangerous and challenging for the male. When males are ready to mate, they have to be careful so that they don't either get cannibalized or chased either by the female or another male.
Spiders have prey preference
All spiders are predators and have prey - catching behaviors which are different. In spiders, there are two different types of predators. One is the stenophagous and the other is euryphagous. The stenophagous predators behavior may or may not be specialized being prey - specific prey - catching. The euryphagous predators behavior is not as specialized as what their diet is. This type of predator may be specialized in prey - catching but not specialized in their diet. There is two types of jumping spiders which have stenophagous behavior, one is ant - eating species and the other is spider - eating species. Both have certain ways they catch their prey. When the ant - eating species catch their prey they must be careful so that they don't get killed in the process. An ant is an insect which most species of spiders will not choose for prey. The spider - eating species uses the web of the prey to catch their prey. First thing for them to do is to get on the web without making the web move, instead of walking across the whole web to catch the prey they stay in one place and jiggle the web so the prey thinks it is prey for them. The species of spiders that use their prey's web to catch them are known as araneophagic salticids which are Brettus adonis, Brettus cingulatus, and Gelotia lanka from Sri Lanka; Cyrba algerina from Southern Europe; Cyrba ocellata from Australia, Kenya, Sri Lanka, and thailand; and five species of Portia which are P. africana and P. schultzi from Kenya, P. albimana from Sri Lanka, P. labiata from Malaysia and Sri Lanka and P. fimbriata from Australia, Malaysia, and Sri Lanka. These types of spiders also catches prey which are outside of the webs, then invades another spiders web which it uses aggressive mimicry and catches the resident spider and takes insects and resident spider eggs also.
...

One species of spiders uses a cryptic stalking motion to catch the salticids. This spider is in Queensland, Australia known as Portia fimbriata. When P. fimbriata moves in a web, it moves very slowly and when detected it is too late for the salticid to escape. Salticids have secondary eyes which are good movement detectors and if it sees the P. fimbriata it moves around a lot to figure out what is behind it. If this happens, the P. fimbriata totally stands still until the salticid turns away again. P. fimbriata may have to be concerned with the size and type of prey to eat because a salticid which is large maybe able to either injure or kill the P. fimbriata. The size of the meal is more important to females then males. Females are normally bigger then males and have a greater need for large food and are more ready to take a risk getting their prey.
There were tests done on the feeding habits of the P. fimbriata. In the tests, the female P. fimbriata ate web building spiders and salticids more often then eating insects, but they preferred to eat salticids over web building spiders. There was a test done to see if the P. fimbriata female would take a web building spider over an insect. Most of them would drop the insect and take the web building spider. Another test done was to find if the P. fimbriata female would take an insect over an salticid. The P. fimbriata female would drop the insect for the salticid. Another test done was with size of prey they would eat. Sizes were very small, small, and large web building and salticids. The P. fimbriata females ate small species more often then very small species. Also they ate large species more often then small species. With males they resembled females by attacking spiders first more often then attacking insects. With both male and female P. fimbriata, they ate salticids more often then web building spiders. Males ate small spiders more often then very small spiders like female, but males are different in eating small spiders more often then large spiders. In all tests done with insects, the P. fimbriata also took spiders over insects. Portia is a genus of salticids which studied in nature feed mostly on web building spiders. The behavior of Portia salticids are prey - specific prey - catching against web building spiders. These types of predators have an unusual diet and evolved prey - specific prey - catching behavior for certain types of prey. Species of spiders that eat prey which can be dangerous to them have prey - specific prey - catching behavior and have distinctive preferences for unusual and dangerous prey. Studying males in nature, they often feed on the same types of web building spiders as females do and also use same behaviors as females, prey - specific prey - catching. Both male and female P. fimbriata prefer web building spiders over insects but often prey on cursorial salticids. They both use cryptic stalking to catch the cursorial salticids. When catching prey, females are more effective then males. When P. fimbriata catches prey it first touches the prey with its forelegs, and slowly moves over the prey and bites it. Most all species of Portia studied seldom leaps on any kind of prey.
Defense Behaviors
There are species of spiders that use their urticating hair on their dorsum of the abdomens for defense. When they use hair for defense, they release their hairs by using their hind legs. Then they rub their abdomen with their hind legs and the hairs fly off their abdomen and hit what they are protecting them selves from. The main species of spiders that use this defense are the Mygalomorph. These hairs are found in different places on different spiders. The hairs on the genus Ephebopus are found on a distinctive pad on the distal prolateral surface of the pedipalpal femur. One genus of Mygalomorph which has hairs on the abdomen has never been recorded with hair flicking, this is the genus Aviculariinae. According to the Bertani and Marques 1995/1996 article, the mechanism which releases the hairs are still not known very well. Aviculariinae have five species which they insert urticating hairs by direct contact with the predator, reported by Bertani and Marques. There were tests done on certain spiders, these were Avicularia avicularia, Avicularia walckenaeri, Avicularia sp., Pachistopelma rufonigrum, Theraphosinae, Acanthoscurria atrox, Vitalius sorocabae, Lasiodora klugi, Grammostola actaeon, and Theraphosa blondi. These species were studied in the Laboratorio de Artropodos of the Instituto Butantan, Sao Paulo. To test this defense behavior in the laboratory, they were touched with forceps or tip of a finger which caused them to respond. All tests were recorded to study the defense method in greater detail. The main species that showed the hair flicking defense was the Theraphosinae spiders. To flick their hairs, they lifted either one or both hind legs on the dorsum of the abdomen and kicked the hair off them. With the Aviculariinae species, they have well developed claw tufts at ends of legs to help them hold on to the object and directed their abdomen toward the object. The Aviculariinae turned its abdomen toward the object and rubbed it against the object. After hairs hit the skin, they penetrate into the skin slowly and embeds completely after one to two days. This species would only use the rubbing method for defense if they were in their silk webs but if out of the web, they would take a flight and run across the cage floor or climb the walls. Theraphosicae have many spines on their legs which help to comb the hairs to flick them off the abdomen. Theraphosicae are the only group that can flick and shed their hairs. Many hairs still remain attached while others are combed off the abdomen. The Aviculariinae do not have spines on their legs like the Theraphosidae, but a few have apical spines. There is a difference in size and types of hairs between Theraphosidae and Aviculariinae. The Theraphosidae have type I, type III, and type IV. Type I hairs are 0.2 to 0.6 mm in length, type III hairs are 0.3 to 1.2 mm in length , and type IV hairs are 0.06 to 0.2 mm in length. Most of the hair are thin, short, and flow by air. Aviculariinae spiders have two types of hair, type II and type V. Type II are only found in the abdomen of the genera Avicularia, Pachistopelma, and Iridopelma. Type II are 0.5 mm in length which are longer than the other hairs. They are also stout and have many small, scale-like barbs. When this type are scraped off the spider, they do not get carried by air but fall to the ground instead. The penetrating tip of the hair in type II are directed downwards which in type I, type III, and type IV are directed upward. The type II hairs are only released when the abdomen of the spider is touched and the penetrating tip rises up to come in contact with the object that touched it. The next type of hair are type V which are short and stout, with many barbs and are easily blown thru the air. The types of hair have different structures and release in different ways. These urticating hairs are the same size as cactus thorns and when they touch the skin, you can't see them but sure can fill them.
Reproduction in Spiders
Female spiders can have multiple mating. Males have to be concerned about this because they have to make sure that their sperm fertilizes the eggs and not by another male. To prevent this from happening, the male has to ejaculate lots of sperm and prevent the female from attracting other males. To stop the female from attracting other males, males can physically repell them by placing obstructions over her genital opening, or by transferring chemical compounds that induce refractory period which female will not be sexually receptive anymore. There is a period where mate guarding is used until onset of refractory period begins. Male spiders using mechanisms that enable the female to mate with other males have been reported by Austad 1984, Christenson et al. 1985, Suter 1990, Watson 1991, Dodson and Beck 1993, Eberhard et al. 1993, Masumoto 1993, Uhl 1993, and Prenteret al. 1994. Watson 1986 found a species of spider that used a sex attracting pheromone that destroyed the web of the female, which was the male Linyphia litigiosa. Another type of male spider studied by Masumoto 1993, used a copulatory plug during mating which inhibits the transfer of sperm by other male spiders, this species are known as the Agelena limbata. Many male species stay around the female after mating to repell off other males. Andrade 1996 found that male redback spiders sexually cannibalize to reduce the proportion of eggs that were fertilized by subsequently mating.
Many females after mating go into the refractory period and are not sexually receptive to other males that are around her, this is common in most insects also. This type of period has not totally been widely documented for spiders. The multiple mating by females are more likely to be in gregarious spiders then solitary spiders. More males are attracted by female gregarious because of the aggregation which males can move easily among these females. A gregarious spider which form aggregation of orb webs share structural threads like other females, this spider is known as Gasteracantha minax which is the Australian jewel spider. A female G. minax spiders can be surrounded by several courting males which wait at edge of her web for her to react for mating. Without leaving the aggregation, the males can count several females. Before mating, court male G. minax locates the female web and constructs a mating thread from the vegetation of the edge of the female web. Then the male goes halfway up the thread with his first and second pair of legs. The female eventually moves out onto the thread toward the male. The male and female touches legs before the male grabs her tightly and clasps her ventral surface of her abdomen with his legs. The male then places one of his palps adjacent to the females epigyne, inserts his embolus, and transfers sperm. Then they take less then a minute interval which the female returns to central hub while male is still attached. Eventually male leaps away from female by the thread attached to the web. The male then courts the female a second time and inserts the embolus from his other palp. For more details on the mating and courtship behavior among these spiders refer to Mascord 1970 and Robinson and Robinson 1980. Different species of orb weaving maybe different in sexual dimorphism. In some species, females maybe larger in the order of magnitude then males. Usually females are at least one and a half times bigger in size then males and court of a mating thread is less pronounced in different species. During mating the female G. minax are three times the weight size of the male G. minax which is surprising for the courtship behavior. Elgar and Bathgate did some experiments to investigate the way male G. minax reduce the females to remate. To do this Elgar and Bathgate introduced males at different times during the courtship and mating sequence. They also did another experiment study on the influence of male-male competition and sexual cannibalism on sexual dimorphism.
The amount of G. minax spiders were counted in late December 1992 and early January 1993 on the coastal salt marsh fringe of Port Philip Bay at Williamstown, Victoria. Then Elgar and Bathgate counted the number of males and females on solitary or aggregated webs that were bisected by the transect lines. They also collected immature males and females from this group. Elgar and Bathgate put the immature males and females in individual containers in the laboratory for them to mature. These spiders were feed bush flies known as Lucilia cuprina. The mature females were weighed on an electronic balance and transferred into a enclosed perspex mating frame with the measurements of 70 x 50 x 10 cm.Within a few days, the females built a complete orb web. Most females used in the study weighed 38.3 mg. The males were weighed on the days that they were used for mating. The average weight was 13.7 mg for males. For Elgar and Bathgate to test the relationship between female receptivity and male mate-guarding behavior then introduced the males either while mating was going on or the following day after mating. One test was to add one male only to a virgin female and he was either removed after successfully doing both pedipalp insertions or left in mating frame overnight with the female. The next test was to release one male into the mating frame with a virgin female then releasing the second male in the same mating frame either during first or second pedipalp insertion of the first male or male released into the mating frame with solitary female the next day after mating occured. These types of testing were done to see what happens with courtship, copulation, and aggressive behavior of males and females at different times of mating. When putting males in with females, they were put on the base of the mating frame which then the males would find the female orb webs themselves by walking up the side of the frame. Elgar and Bathgate would record the time the male got to the orb web. Copulation was initiated and ended when female would chase the male and the males would chase the rival males. For Elgar and Bathgate to tell what male was whom, they would either tell by size or natural markings.
The results of Elgar and Bathgates experiments, the adult and immature G. minax female spiders per aggregation at Williamstown was 3.1 and for male adult G. minax per aggregation was 1.6. There were nine females and four males that were the largest aggregation. Between number of females and number of males there were positve correlation found within aggregations. When Elgar and Bathgate did these experiments, they found out it was hard to estimate the number of adult males per female for each aggregation because they could not always tell which females the males congregated. The mean of adult males per solitary females were 1.45. The solitary females had at least one male and one of these females had three males on the periphery of her web. It took about 20.2 minutes for the male G. minax to locate the orb web of the female G. minax and then the female would capture and cannibalize the male before he could embrace her, this happened in three of thirty trials. The males that were cannibalized by females did not have a different weight from those males that avoided being cannibalized. The females that were cannibalistic did not have a weight difference from females that were noncannibalistic. There was also no differences in behavior in the males that were either cannibalized or noncannibalized. Elgar and Bathgate defined the duration of copulation as the time when the male first embraced the female to when he leapt away from her. The duration copulation had a positive correlation with that of the second compulation when female encountered a single male. The duration of either first or second copulation was not significantly correlated with either male or female size. There were also no difference in duration of first copulation with either virgin females or mated females with mating males.
Studing in the field, males that were already on the female orb web would pluck or pull silk threads to get rid of intruding males. These aggressive interactions would work when one male would retreat and go to the edge of the orb web. This also happenend in the laboratory when other males were introduced to the orb web. In the lab, the males that were already there would chase the other males off the web. The time between first and second copulation was 22.7 minutes when there was no other males in the web. When other males were present, the time was shorter. The duration of the second copulation was influenced when other males were present. When no other males were present, the duration of the second copulation were longer then the first copulation but if another male was present, it was not much different.
Female G. minax would mate several times if she was not mated the day before. For male to mate with a female after she mated before, the courtship must be within an hour after previous mating. Females would chase the males off more frequently if they were mated a day before compared to within the hour. Males reacted to other males more often it they would be in the web the same time they were copulating then if the male entered the web the following day. The male left overnight with the female would move off the orb web by the next morning. When male spiders mate, there are things they have to be careful so that they don't get cannbalized by the female or chased off by either another male or the female. For spiders to survive, they must have different methods to defend themselves. Spiders all are very defensive when it comes to catching prey, protecting themselves from predators, and when they are ready to reproduce.
Read more / Selengkapnya...

Rabu, 21 Januari 2009

Mekanisme Gerak Sayap Pada Insecta

SISTEM SAYAP BERIMBANG GANDA

Beberapa jenis lalat mengepakkan sayapnya hingga seribu kali dalam satu detik. Untuk mencapai gerakan luar biasa ini, satu sistem yang amat istimewa diciptakan. Sebagai ganti menggerakkan sayap secara langsung, otot mendorong suatu jaringan khusus tempat sayap melekat melalui sendi seperti poros. Jaringan khusus ini memungkinkan sayap mengepak berkali-kali dalam satu tarikan.



Sayap lalat bergetar menurut sinyal listrik yang dihantarkan oleh saraf. Contohnya, pada belalang setiap satu sinyal saraf menghasilkan satu pengerutan otot yang akibatnya menggerakkan sayap. Dua kelompok otot yang berlawanan, yang dikenal sebagai “pengangkat” dan “peredam” menjadikan sayap bergerak naik dan turun dengan menarik dalam arah yang berlawanan.



Jangkrik mengepakkan sayapnya dua belas hingga lima belas kali per detik, namun serangga yang lebih kecil perlu jumlah kepakan yang lebih tinggi agar dapat terbang. Contohnya, jika lebah madu, tawon dan lalat mengepakkan sayapnya 200 hingga 400 kali per detik, jumlah ini meningkat hingga 1000 kali pada ngengat dan beberapa parasit sepanjang 1 milimeter. Bukti lain yang jelas tentang penciptaan yang sempurna adalah bahwa makhluk terbang sepanjang 1 milimeter mampu mengepakkan sayapnya dengan jumlah yang luar biasa mencapai seribu kali per detik tanpa membakar, mengoyak, atau pun melelahkan serangga itu.





Telah disebutkan bahwa sayap mereka digerakkan dengan perantaraan sinyal listrik yang dikirimkan melalui saraf. Akan tetapi, suatu sel saraf hanya mampu menghantarkan sebanyak-banyaknya 200 sinyal per detik.



Lalat yang mengepakkan sayapnya 200 kali per detik memiliki hubungan saraf-otot yang berbeda dengan yang terdapat pada belalang. Terdapat satu sinyal yang dialirkan untuk setiap 10 kepakan sayap. Di samping itu, otot yang dikenal sebagai otot serat bekerja dengan pola yang berbeda dengan otot-otot belalang. Sinyal saraf hanya memerintahkan otot bersiap untuk terbang dan, ketika otot mencapai tingkat tegangan tertentu, otot pun mengendur dengan sendirinya.



Terdapat suatu sistem pada lalat, lebah madu, dan tawon yang mengubah kepak sayap menjadi gerakan “otomatis.” Otot-otot yang memungkinkan penerbangan pada serangga-serangga ini tidak terikat langsung pada tulang-tulang tubuh. Sayap menempel ke dada dengan persendian yang berguna sebagai poros. Otot yang menggerakkan sayap dihubungkan dengan permukaan bawah dan atas dada. Ketika otot-otot tersebut mengerut, dada bergerak dalam arah berlawanan, yang pada gilirannya menimbulkan tarikan ke bawah.



Mengendurkan sekelompok otot secara otomatis menghasilkan pengerutan kelompok yang berlawanan yang diikuti dengan pengenduran. Dengan kata lain, hal ini merupakan suatu “sistem otomatis.” Dengan cara ini, gerakan otot berlanjut tanpa henti hingga sinyal pemberitahuan berlawanan dikirimkan melalui saraf yang mengendalikan sistem tersebut.





Otot terbang dari banyak serangga seperti belalang dan capung mengerut sangat kuat akibat rangsangan yang ditimbulkan saraf-saraf yang mengendalikan setiap gerakannya. Pada belalang, misalnya, sinyal-sinyal kiriman setiap saraf menyebabkan otot-otot terbang mengerut. Dengan bekerja bergantian, tidak saling berlawanan, dua kelompok otot yang saling melengkapi, yang dinamakan elevator (pengangkat) dan depresor (penurun), memungkinkan sayap-sayap terangkat dan mengepak ke bawah. Belalang mengepakkan sayapnya 12 hingga 15 kali per detik, dan agar dapat terbang serangga-serangga lebih kecil harus mengepakkan sayapnya lebih cepat lagi. Lebah madu, tawon dan lalat mengepakkan sayap 200 hingga 400 kali per detik, dan pada ganjur dan sejumlah serangga merugikan yang berukuran hanya 1 milimeter (0.03 inci), kecepatan ini meningkat ke angka mengejutkan 1000 kali per detik, Sayap-sayap yang mengepak terlalu cepat untuk dapat dilihat mata manusia telah diciptakan dengan rancangan khusus agar dapat melakukan kerja yang terus-menerus semacam ini.







Otot-otot penerbangan dari banyak serangga seperti capung mengerut sangat kuat akibat rangsangan yang ditimbulkan oleh saraf-saraf yang mengendalikan setiap gerakan mereka






Pada perangkat istimewa ini, yang masing-masing diciptakan tersendiri pada tubuh setiap serangga, tak dijumpai ketidakteraturan sedikit pun. Saraf-sarafnya tidak pernah mengirim sinyal yang salah, dan otot-otot serangga senantiasa menerjemahkannya secara benar.
Otot – otot tergosternal dan otot-otot dorsal longitudinal dikenal sebagai otot sayap yang tidak langsung karena mereka menghasilkan efek (menaik dan gerak-menurun dari sayap) secara tidak langsung dengan mengubah bentuk dari rongga dada. Kontraksi dari otot-otot tergosternal menekan notum dan menghasilkan gerak naik sayap, posisi yang sangat penting selama proses terbang. Kontraksi otot-otot dorsal longitudinal menghasilkan lengkungan yang menaik pada notum, menghasilkan suatu gerak-menurun dari sayap-sayap. Otot-otot basalar menghasilkan suatu gerak-menurun basalar, yang pada gilirannya (oleh karena koneksinya dengan pinggiran kosta dari sayap) mengakibatkan suatu tekanan pada pinggiran kosta sayap dan/atau satu perluasan (gerakan majua) dari sayap-sayap. Otot-otot subalar meluaskan sayap atau menekan tepi belakang sayap. Otot-otot axillary menggerakkan sayap mundur dan melenturkan otot – ototnya dengan memutar axillary dorsal yang ketiga menuju ke dalam.



Pada jenis seperti lalat dan lebah, otot-otot yang memungkinkan terbang bahkan tidak menempel pada pangkal sayap. Sebaliknya, otot-otot ini melekat pada dada melalui pengait yang berperan seperti engsel, sedangkan otot-otot yang mengangkat sayap ke atas melekat pada permukaan atas dan bawah dada. Saat otot-otot ini mengerut, permukaan dada menjadi rata dan menarik pangkal sayap ke bawah. Permukaan samping sayap memberikan peran penyokong sehingga memungkinkan sayap-sayap terangkat. Otot-otot yang menimbulkan gerakan ke bawah tidak melekat langsung pada sayap, tapi bekerja di sepanjang dada. Ketika otot-otot ini mengerut, dada tertarik kembali ke arah berlawanan, dan dengan cara ini sayap tergerakkan ke bawah.



Engsel sayap tersusun atas protein khusus yang dikenal sebagai resilin, yang memiliki kelenturan luar biasa. Karena sifatnya jauh mengungguli karet alami ataupun buatan, para insinyur kimia berupaya membuat tiruan bahan ini, di laboratorium. Saat melentur dan mengerut, resilin mampu menyimpan hampir keseluruhan energi yang dikenakan padanya, dan ketika gaya yang menekannya dihilangkan, resilin mampu mengembalikan keseluruhan energi itu. Alhasil, daya guna (efisiensi) resilin dapat mencapai 96%. Saat sayap terangkat, sekitar 85% energi yang dikeluarkan disimpan untuk saat berikutnya; energi yang sama ini kemudian digunakan kembali dalam gerakan ke bawah yang memberikan daya angkat ke atas dan mendorong sang serangga ke depan. Permukaan dada dan ototnya telah diciptakan dengan rancangan istimewa untuk memungkinkan pengumpulan energi ini. Namun, energi tersebut sesungguhnya disimpan pada engsel yang terdiri atas resilin. Sudah pasti mustahil bagi seekor serangga, dengan usahanya sendiri, melengkapi diri sendiri dengan peralatan luar biasa untuk terbang. Kecerdasan dan kekuatan tak terhingga Allah telah menciptakan resilin istimewa ini pada tubuh serangga.



Untuk penerbangan yang mulus, gerakan lurus ke atas dan ke bawah saja tidaklah cukup. Agar dapat memunculkan gaya angkat dan gaya dorong, sayap haruslah pula mengubah sudut gerakannya di setiap kepakan. Sayap-sayap serangga memiliki kelenturan berputar yang khas, tergantung jenisnya, yang dimungkinkan oleh apa yang disebut sebagai direct flight muscles (otot-terbang kemudi), disingkat DFM yang menghasilkan gaya-gaya yang diperlukan untuk terbang.



Ketika serangga berupaya naik lebih tinggi di udara, mereka memperbesar sudut sayap mereka dengan mengerutkan otot-otot di antara engsel-engsel sayap ini secara lebih kuat. Rekaman gambar berkecepatan-tinggi dan gerak-terhenti memperlihatkan bahwa selama terbang, sayap-sayap tersebut bergerak mengikuti lintasan lingkar-telur dan untuk setiap kali putaran sayap, sudutnya berubah secara teratur. Perubahan ini disebabkan pergerakan yang senantiasa berubah dari otot-terbang kemudi dan penempelan sayap pada tubuh.



Banyak jenis serangga, termasuk belalang, memperhatikan apa yang ditangkap penglihatannya seperti garis kaki langit (horizon) untuk menentukan arah terbang dan tujuan akhirnya. Untuk mengokohkan keseimbangan kedudukannya, lalat telah diciptakan dengan rancangan yang lebih luar biasa lagi. Serangga-serangga ini memiliki hanya sepasang sayap, tapi di sisi belakang masing-masing sayap itu terdapat tonjolan melingkar yang dikenal sebagai halter (pengekang). Meskipun tidak menghasilkan gaya angkat, pengekang ini bergetar bersama sayap-sayap depan. Di saat serangga mengubah arah terbangnya, tonjolan sayap ini mencegahnya menyimpang dari jalur perjalanan.









Lebah madu, tawon dan lalat mengepakkan sayap mereka 200 hingga 400 kali per detik.






Untuk penerbangan yang mulus, gerakan sayap lurus ke atas dan ke bawah tidaklah cukup. Sayap mesti pula mengubah sudut gerakannya di setiap kepakan. Sayap-sayap serangga memiliki kelenturan-berputar yang istimewa yang diberikan oleh otot-otot pengendali penerbangan.








Gambar di atas menunjukkan pergerakan sayap capung ketika terbang. Sayap depan ditandai dengan bintik merah. Pengamatan lebih dekat memperlihatkan bahwa pasangan sayap depan dan belakang dikepakkan dengan irama yang berbeda, yang memberi sang serangga cara terbang yang luar biasa. Gerakan sayap tersebut dimungkinkan oleh otot-otot khusus yang bekerja dengan selaras







Sistem sayap berimbangan ganda ditemukan bekerja pada serangga yang kurang sering mengepakkan sayap.
Read more / Selengkapnya...

Comments

Script Search

My_friendster

Yahoo Messenger

Spider View

Snap Shots

Get Free Shots from Snap.com

Friends